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首页> 外文期刊>Journal of Applied Polymer Science >Microphase separation, stress relaxation, and creep behavior of polyurethane nanocomposites
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Microphase separation, stress relaxation, and creep behavior of polyurethane nanocomposites

机译:聚氨酯纳米复合材料的微相分离,应力松弛和蠕变行为

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摘要

The stress relaxation and creep behavior of blank polyurethane (PU) and PU/clay nanocomposites were investigated. The relaxation time spectrum and retardant time spectrum were derived according to the generalized Maxwell model and Voigt model with a Tikhonov regularization method, respectively. The characteristic relaxation time was identified with the corresponding relaxation process. At a small strain, the relaxation was mainly attributed to uncoiling/ disentangling of soft segment chain network in the soft phase, with a single characteristic relaxation time in the range of 5-100 s. The increase in the hard segment content leads to a decrease in the relaxation time, and the addition of clay leads to an increase in the relaxation time. At large strains, the multi-peak relaxations occurred, and they were attributed to the breakup of interconnected hard domains and pullout of soft segment chains from hard domains, together with the disentangling of soft segment chain network in the soft phase. The creep results are consistent with those of the stress relaxation. The relaxation and creep behavior were related to microphase separation of PU. This study suggested that the relaxation spectrum can be used to examine the complicated relaxation processes for a multiphase and multicomponent polymer system. (c) 2006 Wiley Periodicals, Inc.
机译:研究了空白聚氨酯(PU)和PU /粘土纳米复合材料的应力松弛和蠕变行为。弛豫时间谱和延迟时间谱分别根据广义的Maxwell模型和Voigt模型,采用Tikhonov正则化方法得出。用相应的弛豫过程确定特征弛豫时间。在较小的应变下,松弛主要归因于软相链段网络在软相中的开卷/解缠,单个特征弛豫时间为5-100 s。硬链段含量的增加导致弛豫时间的减少,而粘土的添加导致弛豫时间的增加。在大应变下,发生了多峰松弛,这是由于相互连接的硬结构域破裂和从硬结构域拔出软链段链,以及在软相中解开软链段链网络造成的。蠕变结果与应力松弛结果一致。松弛和蠕变行为与聚氨酯的微相分离有关。这项研究表明,弛豫谱可用于检查多相和多组分聚合物体系的复杂弛豫过程。 (c)2006年Wiley Periodicals,Inc.

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